Pseudoelastic Behavior of Boron-Doped ?1 -Type Cu-Al-Be Shape Memory Alloys
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Date
2021
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Publisher
Springer
Abstract
This paper examines the influence of 0-0.2 wt.%B-doping on the microstructure, mechanical properties, and pseudoelastic behavior of Cu-Al<inf>11.5</inf>-Be<inf>0.57</inf> shape memory alloys (SMAs). This microstructure study reveals that the addition of boron leads to significant grain refinement in ?<inf>1</inf>-type polycrystalline Cu-Al-Be SMAs. A maximum refinement size of 50 µm was achieved with the addition of 0.15 wt.%B. The fine-grained (Cu-Al<inf>11.5</inf>-Be<inf>0.57</inf>)-B<inf>0.15</inf> SMA with serrated grain boundaries exhibited the maximum enhancement of ultimate tensile strength, 744.65 ± 29.34 MPa, and ductility of 21.93 ± 0.56%. The fracture morphology revealed the transformation of intergranular to transgranular fracture in the SMAs with boron-doping. Maximum pseudoelasticity of 4% was achieved in the SMA with 0.15 wt.%B and suits as a damper in seismic applications. © 2021, ASM International.
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Keywords
Beryllium alloys, Boron, Copper alloys, Grain boundaries, Grain refinement, Morphology, Shape-memory alloy, Tensile strength, Ternary alloys, Textures, Fracture morphology, Intergranular, Polycrystalline, Pseudoelastic behaviors, Pseudoelasticity, Seismic application, Transgranular fracture, Ultimate tensile strength, Aluminum alloys
Citation
Journal of Materials Engineering and Performance, 2021, 30, 8, pp. 6068-6078
